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Classic designInfrastructure & SREintermediate

3. Design a Distributed Cache

Partition cached data, survive node loss and keep cache misses from overwhelming the source of truth.

The brief

Design a distributed cache for a read-heavy service with a separate durable database. Specify get, set and delete behavior, key ownership, expiry and eviction. Explain how clients find a key during membership changes and how the database is protected when popular entries disappear.

  • Keep 100 million entries averaging 1 KB of value data; peak demand is 500,000 reads/second.
  • Five percent of keys account for 80% of requests, and values may be stale for up to 30 seconds.
  • Cache nodes can restart or be replaced during normal traffic. The database cannot sustain the full miss load.

Constraints

Cache-hit latency≤ 5 milliseconds
Declare p95 cache-hit server latency in one region.
Freshness contract
Explain invalidation, expiry and the circumstances under which a stale value may be returned.
Database protection
Bound concurrent fills and load on the source when nodes or hot keys disappear.

What to cover

  1. 01

    Contract and key placement

    Define cache APIs, namespace isolation and client routing.

  2. 02

    Memory and replication

    Estimate capacity including overhead and any replicas; explain eviction.

  3. 03

    Membership change

    Trace node loss and replacement, including misses and any moved keys.

  4. 04

    Hot-key recovery

    Walk through mass expiry and compare duplicate fills, request coalescing and stale serving.

Worked designs

Explore the architecture and decisions, then build on an example with Coach.

Review rubric

AI feedback uses these criteria. Scores are practice feedback.

Cache contract

Expiry, invalidation and durable ownership are distinct.

25points

Placement and membership

Routing and node changes have coherent behavior.

30points

Capacity and load protection

Memory, hot keys and miss admission are quantified.

25points

Recovery choices

An outage walkthrough explains availability and freshness tradeoffs.

20points

Discussion

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